1 /* SPDX-License-Identifier: MIT */ 2 /* 3 * Copyright © 2021 Intel Corporation 4 */ 5 6 #ifndef _XE_VM_H_ 7 #define _XE_VM_H_ 8 9 #include "xe_assert.h" 10 #include "xe_bo_types.h" 11 #include "xe_macros.h" 12 #include "xe_map.h" 13 #include "xe_vm_types.h" 14 15 struct drm_device; 16 struct drm_printer; 17 struct drm_file; 18 19 struct ttm_buffer_object; 20 21 struct dma_fence; 22 23 struct xe_exec_queue; 24 struct xe_file; 25 struct xe_sync_entry; 26 struct xe_svm_range; 27 struct drm_exec; 28 29 struct xe_vm *xe_vm_create(struct xe_device *xe, u32 flags, struct xe_file *xef); 30 31 struct xe_vm *xe_vm_lookup(struct xe_file *xef, u32 id); 32 int xe_vma_cmp_vma_cb(const void *key, const struct rb_node *node); 33 34 static inline struct xe_vm *xe_vm_get(struct xe_vm *vm) 35 { 36 drm_gpuvm_get(&vm->gpuvm); 37 return vm; 38 } 39 40 static inline void xe_vm_put(struct xe_vm *vm) 41 { 42 drm_gpuvm_put(&vm->gpuvm); 43 } 44 45 int xe_vm_lock(struct xe_vm *vm, bool intr); 46 47 void xe_vm_unlock(struct xe_vm *vm); 48 49 static inline bool xe_vm_is_closed(struct xe_vm *vm) 50 { 51 /* Only guaranteed not to change when vm->lock is held */ 52 return !vm->size; 53 } 54 55 static inline bool xe_vm_is_banned(struct xe_vm *vm) 56 { 57 return vm->flags & XE_VM_FLAG_BANNED; 58 } 59 60 static inline bool xe_vm_is_closed_or_banned(struct xe_vm *vm) 61 { 62 lockdep_assert_held(&vm->lock); 63 return xe_vm_is_closed(vm) || xe_vm_is_banned(vm); 64 } 65 66 struct xe_vma * 67 xe_vm_find_overlapping_vma(struct xe_vm *vm, u64 start, u64 range); 68 69 bool xe_vma_has_default_mem_attrs(struct xe_vma *vma); 70 71 void xe_vm_find_cpu_addr_mirror_vma_range(struct xe_vm *vm, 72 u64 *start, 73 u64 *end); 74 /** 75 * xe_vm_has_scratch() - Whether the vm is configured for scratch PTEs 76 * @vm: The vm 77 * 78 * Return: whether the vm populates unmapped areas with scratch PTEs 79 */ 80 static inline bool xe_vm_has_scratch(const struct xe_vm *vm) 81 { 82 return vm->flags & XE_VM_FLAG_SCRATCH_PAGE; 83 } 84 85 /** 86 * gpuvm_to_vm() - Return the embedding xe_vm from a struct drm_gpuvm pointer 87 * @gpuvm: The struct drm_gpuvm pointer 88 * 89 * Return: Pointer to the embedding struct xe_vm. 90 */ 91 static inline struct xe_vm *gpuvm_to_vm(struct drm_gpuvm *gpuvm) 92 { 93 return container_of(gpuvm, struct xe_vm, gpuvm); 94 } 95 96 static inline struct xe_vm *gpuva_to_vm(struct drm_gpuva *gpuva) 97 { 98 return gpuvm_to_vm(gpuva->vm); 99 } 100 101 static inline struct xe_vma *gpuva_to_vma(struct drm_gpuva *gpuva) 102 { 103 return container_of(gpuva, struct xe_vma, gpuva); 104 } 105 106 static inline struct xe_vma_op *gpuva_op_to_vma_op(struct drm_gpuva_op *op) 107 { 108 return container_of(op, struct xe_vma_op, base); 109 } 110 111 /** 112 * DOC: Provide accessors for vma members to facilitate easy change of 113 * implementation. 114 */ 115 static inline u64 xe_vma_start(struct xe_vma *vma) 116 { 117 return vma->gpuva.va.addr; 118 } 119 120 static inline u64 xe_vma_size(struct xe_vma *vma) 121 { 122 return vma->gpuva.va.range; 123 } 124 125 static inline u64 xe_vma_end(struct xe_vma *vma) 126 { 127 return xe_vma_start(vma) + xe_vma_size(vma); 128 } 129 130 static inline u64 xe_vma_bo_offset(struct xe_vma *vma) 131 { 132 return vma->gpuva.gem.offset; 133 } 134 135 static inline struct xe_bo *xe_vma_bo(struct xe_vma *vma) 136 { 137 return !vma->gpuva.gem.obj ? NULL : 138 container_of(vma->gpuva.gem.obj, struct xe_bo, ttm.base); 139 } 140 141 static inline struct xe_vm *xe_vma_vm(struct xe_vma *vma) 142 { 143 return container_of(vma->gpuva.vm, struct xe_vm, gpuvm); 144 } 145 146 static inline bool xe_vma_read_only(struct xe_vma *vma) 147 { 148 return vma->gpuva.flags & XE_VMA_READ_ONLY; 149 } 150 151 static inline u64 xe_vma_userptr(struct xe_vma *vma) 152 { 153 return vma->gpuva.gem.offset; 154 } 155 156 static inline bool xe_vma_is_null(struct xe_vma *vma) 157 { 158 return vma->gpuva.flags & DRM_GPUVA_SPARSE; 159 } 160 161 static inline bool xe_vma_is_cpu_addr_mirror(struct xe_vma *vma) 162 { 163 return vma->gpuva.flags & XE_VMA_SYSTEM_ALLOCATOR; 164 } 165 166 static inline bool xe_vma_has_no_bo(struct xe_vma *vma) 167 { 168 return !xe_vma_bo(vma); 169 } 170 171 static inline bool xe_vma_is_userptr(struct xe_vma *vma) 172 { 173 return xe_vma_has_no_bo(vma) && !xe_vma_is_null(vma) && 174 !xe_vma_is_cpu_addr_mirror(vma); 175 } 176 177 struct xe_vma *xe_vm_find_vma_by_addr(struct xe_vm *vm, u64 page_addr); 178 179 int xe_vma_need_vram_for_atomic(struct xe_device *xe, struct xe_vma *vma, bool is_atomic); 180 181 int xe_vm_alloc_madvise_vma(struct xe_vm *vm, uint64_t addr, uint64_t size); 182 183 int xe_vm_alloc_cpu_addr_mirror_vma(struct xe_vm *vm, uint64_t addr, uint64_t size); 184 185 /** 186 * to_userptr_vma() - Return a pointer to an embedding userptr vma 187 * @vma: Pointer to the embedded struct xe_vma 188 * 189 * Return: Pointer to the embedding userptr vma 190 */ 191 static inline struct xe_userptr_vma *to_userptr_vma(struct xe_vma *vma) 192 { 193 xe_assert(xe_vma_vm(vma)->xe, xe_vma_is_userptr(vma)); 194 return container_of(vma, struct xe_userptr_vma, vma); 195 } 196 197 u64 xe_vm_pdp4_descriptor(struct xe_vm *vm, struct xe_tile *tile); 198 199 int xe_vm_create_ioctl(struct drm_device *dev, void *data, 200 struct drm_file *file); 201 int xe_vm_destroy_ioctl(struct drm_device *dev, void *data, 202 struct drm_file *file); 203 int xe_vm_bind_ioctl(struct drm_device *dev, void *data, 204 struct drm_file *file); 205 int xe_vm_query_vmas_attrs_ioctl(struct drm_device *dev, void *data, struct drm_file *file); 206 void xe_vm_close_and_put(struct xe_vm *vm); 207 208 static inline bool xe_vm_in_fault_mode(struct xe_vm *vm) 209 { 210 return vm->flags & XE_VM_FLAG_FAULT_MODE; 211 } 212 213 static inline bool xe_vm_in_lr_mode(struct xe_vm *vm) 214 { 215 return vm->flags & XE_VM_FLAG_LR_MODE; 216 } 217 218 static inline bool xe_vm_in_preempt_fence_mode(struct xe_vm *vm) 219 { 220 return xe_vm_in_lr_mode(vm) && !xe_vm_in_fault_mode(vm); 221 } 222 223 int xe_vm_add_compute_exec_queue(struct xe_vm *vm, struct xe_exec_queue *q); 224 void xe_vm_remove_compute_exec_queue(struct xe_vm *vm, struct xe_exec_queue *q); 225 226 int xe_vm_rebind(struct xe_vm *vm, bool rebind_worker); 227 struct dma_fence *xe_vma_rebind(struct xe_vm *vm, struct xe_vma *vma, 228 u8 tile_mask); 229 struct dma_fence *xe_vm_range_rebind(struct xe_vm *vm, 230 struct xe_vma *vma, 231 struct xe_svm_range *range, 232 u8 tile_mask); 233 struct dma_fence *xe_vm_range_unbind(struct xe_vm *vm, 234 struct xe_svm_range *range); 235 236 int xe_vm_range_tilemask_tlb_inval(struct xe_vm *vm, u64 start, 237 u64 end, u8 tile_mask); 238 239 int xe_vm_invalidate_vma(struct xe_vma *vma); 240 241 int xe_vm_validate_protected(struct xe_vm *vm); 242 243 static inline void xe_vm_queue_rebind_worker(struct xe_vm *vm) 244 { 245 xe_assert(vm->xe, xe_vm_in_preempt_fence_mode(vm)); 246 queue_work(vm->xe->ordered_wq, &vm->preempt.rebind_work); 247 } 248 249 /** 250 * xe_vm_reactivate_rebind() - Reactivate the rebind functionality on compute 251 * vms. 252 * @vm: The vm. 253 * 254 * If the rebind functionality on a compute vm was disabled due 255 * to nothing to execute. Reactivate it and run the rebind worker. 256 * This function should be called after submitting a batch to a compute vm. 257 */ 258 static inline void xe_vm_reactivate_rebind(struct xe_vm *vm) 259 { 260 if (xe_vm_in_preempt_fence_mode(vm) && vm->preempt.rebind_deactivated) { 261 vm->preempt.rebind_deactivated = false; 262 xe_vm_queue_rebind_worker(vm); 263 } 264 } 265 266 int xe_vm_lock_vma(struct drm_exec *exec, struct xe_vma *vma); 267 268 int xe_vm_validate_rebind(struct xe_vm *vm, struct drm_exec *exec, 269 unsigned int num_fences); 270 271 struct dma_fence *xe_vm_bind_kernel_bo(struct xe_vm *vm, struct xe_bo *bo, 272 struct xe_exec_queue *q, u64 addr, 273 enum xe_cache_level cache_lvl); 274 275 void xe_vm_resume_rebind_worker(struct xe_vm *vm); 276 277 /** 278 * xe_vm_resv() - Return's the vm's reservation object 279 * @vm: The vm 280 * 281 * Return: Pointer to the vm's reservation object. 282 */ 283 static inline struct dma_resv *xe_vm_resv(struct xe_vm *vm) 284 { 285 return drm_gpuvm_resv(&vm->gpuvm); 286 } 287 288 void xe_vm_kill(struct xe_vm *vm, bool unlocked); 289 290 /** 291 * xe_vm_assert_held(vm) - Assert that the vm's reservation object is held. 292 * @vm: The vm 293 */ 294 #define xe_vm_assert_held(vm) dma_resv_assert_held(xe_vm_resv(vm)) 295 296 int xe_vm_drm_exec_lock(struct xe_vm *vm, struct drm_exec *exec); 297 298 #if IS_ENABLED(CONFIG_DRM_XE_DEBUG_VM) 299 #define vm_dbg drm_dbg 300 #else 301 __printf(2, 3) 302 static inline void vm_dbg(const struct drm_device *dev, 303 const char *format, ...) 304 { /* noop */ } 305 #endif 306 307 struct xe_vm_snapshot *xe_vm_snapshot_capture(struct xe_vm *vm); 308 void xe_vm_snapshot_capture_delayed(struct xe_vm_snapshot *snap); 309 void xe_vm_snapshot_print(struct xe_vm_snapshot *snap, struct drm_printer *p); 310 void xe_vm_snapshot_free(struct xe_vm_snapshot *snap); 311 312 /** 313 * xe_vm_set_validating() - Register this task as currently making bos resident 314 * @allow_res_evict: Allow eviction of buffer objects bound to @vm when 315 * validating. 316 * @vm: Pointer to the vm or NULL. 317 * 318 * Register this task as currently making bos resident for the vm. Intended 319 * to avoid eviction by the same task of shared bos bound to the vm. 320 * Call with the vm's resv lock held. 321 */ 322 static inline void xe_vm_set_validating(struct xe_vm *vm, bool allow_res_evict) 323 { 324 if (vm && !allow_res_evict) { 325 xe_vm_assert_held(vm); 326 /* Pairs with READ_ONCE in xe_vm_is_validating() */ 327 WRITE_ONCE(vm->validation.validating, current); 328 } 329 } 330 331 /** 332 * xe_vm_clear_validating() - Unregister this task as currently making bos resident 333 * @vm: Pointer to the vm or NULL 334 * @allow_res_evict: Eviction from @vm was allowed. Must be set to the same 335 * value as for xe_vm_set_validation(). 336 * 337 * Register this task as currently making bos resident for the vm. Intended 338 * to avoid eviction by the same task of shared bos bound to the vm. 339 * Call with the vm's resv lock held. 340 */ 341 static inline void xe_vm_clear_validating(struct xe_vm *vm, bool allow_res_evict) 342 { 343 if (vm && !allow_res_evict) { 344 /* Pairs with READ_ONCE in xe_vm_is_validating() */ 345 WRITE_ONCE(vm->validation.validating, NULL); 346 } 347 } 348 349 /** 350 * xe_vm_is_validating() - Whether bos bound to the vm are currently being made resident 351 * by the current task. 352 * @vm: Pointer to the vm. 353 * 354 * If this function returns %true, we should be in a vm resv locked region, since 355 * the current process is the same task that called xe_vm_set_validating(). 356 * The function asserts that that's indeed the case. 357 * 358 * Return: %true if the task is currently making bos resident, %false otherwise. 359 */ 360 static inline bool xe_vm_is_validating(struct xe_vm *vm) 361 { 362 /* Pairs with WRITE_ONCE in xe_vm_is_validating() */ 363 if (READ_ONCE(vm->validation.validating) == current) { 364 xe_vm_assert_held(vm); 365 return true; 366 } 367 return false; 368 } 369 370 /** 371 * xe_vm_set_validation_exec() - Accessor to set the drm_exec object 372 * @vm: The vm we want to register a drm_exec object with. 373 * @exec: The exec object we want to register. 374 * 375 * Set the drm_exec object used to lock the vm's resv. 376 */ 377 static inline void xe_vm_set_validation_exec(struct xe_vm *vm, struct drm_exec *exec) 378 { 379 xe_vm_assert_held(vm); 380 xe_assert(vm->xe, !!exec ^ !!vm->validation._exec); 381 vm->validation._exec = exec; 382 } 383 384 /** 385 * xe_vm_validation_exec() - Accessor to read the drm_exec object 386 * @vm: The vm we want to register a drm_exec object with. 387 * 388 * Return: The drm_exec object used to lock the vm's resv. The value 389 * is a valid pointer, %NULL, or one of the special values defined in 390 * xe_validation.h. 391 */ 392 static inline struct drm_exec *xe_vm_validation_exec(struct xe_vm *vm) 393 { 394 xe_vm_assert_held(vm); 395 return vm->validation._exec; 396 } 397 398 /** 399 * xe_vm_has_valid_gpu_mapping() - Advisory helper to check if VMA or SVM range has 400 * a valid GPU mapping 401 * @tile: The tile which the GPU mapping belongs to 402 * @tile_present: Tile present mask 403 * @tile_invalidated: Tile invalidated mask 404 * 405 * The READ_ONCEs pair with WRITE_ONCEs in either the TLB invalidation paths 406 * (xe_vm.c, xe_svm.c) or the binding paths (xe_pt.c). These are not reliable 407 * without the notifier lock in userptr or SVM cases, and not reliable without 408 * the BO dma-resv lock in the BO case. As such, they should only be used in 409 * opportunistic cases (e.g., skipping a page fault fix or not skipping a TLB 410 * invalidation) where it is harmless. 411 * 412 * Return: True is there are valid GPU pages, False otherwise 413 */ 414 #define xe_vm_has_valid_gpu_mapping(tile, tile_present, tile_invalidated) \ 415 ((READ_ONCE(tile_present) & ~READ_ONCE(tile_invalidated)) & BIT((tile)->id)) 416 417 void xe_vma_mem_attr_copy(struct xe_vma_mem_attr *to, struct xe_vma_mem_attr *from); 418 #endif 419